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February 5, 2026Nature Nanotechnology8 citationsOpen Access

Super-moiré spin textures in twisted two-dimensional antiferromagnets

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KWKing Cho WongRPRuoming PengEAEric Anderson

Key Points

  • The study aims to understand the magnetic order in twisted double-bilayer chromium triiodide and its relationship to moiré structures.
  • Employed scanning nitrogen-vacancy microscopy to observe magnetic textures.
  • Analyzed magnetic field maps to identify spin configurations.
  • Utilized large-scale atomistic Monte Carlo simulations for theoretical insights.
  • Identified long-range magnetic textures exceeding the moiré unit cell size.
  • Observed spontaneous magnetic texture increases with twist angle, peaking at 1.1° with a size of approximately 300 nm.
  • Findings suggest the presence of antiferromagnetic Néel-type skyrmions across multiple moiré cells.

Abstract

Abstract Stacking two-dimensional layered materials offers a platform to engineer electronic and magnetic states. In general, the resulting states—such as moiré magnetism—have a periodicity at the length scale of the moiré unit cell. Here we study magnetic order in twisted double-bilayer chromium triiodide by means of scanning nitrogen-vacancy microscopy. We observe long-range magnetic textures extending beyond the single moiré unit cell, which we dub a super-moiré magnetic state. At small twist angles, the size of the spontaneous magnetic texture increases with twist angle, opposite to the underlying moiré wavelength. The spin-texture size reaches a maximum of about 300 nm in 1.1° twisted devices, an order of magnitude larger than the underlying moiré wavelength, and vanishes at twist angles above 2°. The obtained magnetic field maps suggest the formation of antiferromagnetic Néel-type skyrmions spanning multiple moiré cells. The twist-angle-dependent study, combined with large-scale atomistic Monte Carlo simulations, suggests that the magnetic competition between the Dzyaloshinskii–Moriya interaction, magnetic anisotropy and exchange interactions—which all depend on the relative rotation of the layers—produces the topological textures that emerge in the super-moiré spin order.

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Cite This Study

Wong et al. (2026) studied this question.

synapsesocial.com/papers/69843451f1d9ada3c1fb24e8https://doi.org/10.1038/s41565-025-02103-y
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